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Dynamic Simulation of a CPV/T System Using the Finite Element Method

机译:使用有限元方法的CPV / T系统动态仿真

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The aim of this paper is the determination of a concentrating thermo-photovoltaic (CPV/T) system dynamic model by means of the finite element method (FEM). The system consist of triple-junction InGaP/InGaAs/Ge (indium-gallium phosphide/indium-gallium-arsenide/germanium) solar cells connected to a metal core printed circuit board (MCPCB) placed on a coil circuit used for the thermal energy recovery. In particular, the main aim is to determine the fluid outlet temperature. It is evaluated corresponding both to a constant cell temperature equal to 120 °C, generally representing the maximum operating temperature, and to cell temperature values instantly variable with the direct normal irradiation (DNI). Hence, an accurate DNI analysis is realized adopting the Gordon-Reddy statistical model. Using an accurate electric model, the cell temperature and efficiency are determined together with the CPV/T module electric and thermal powers. Generally, the CPV system size is realized according to the user electric load demand and, then, it is important to evaluate the necessary minimum concentration ratio (Cmin), the limit of CPV system applicability, in order to determine the energy convenience profile. The fluid outlet temperature can be then obtained by the FEM analysis to verify if a CPV/T system can be used in solar heating and cooling applications.
机译:本文的目的是通过有限元方法(FEM)确定聚光光伏系统(CPV / T)系统的动力学模型。该系统由三结InGaP / InGaAs / Ge(磷化铟镓/砷化镓铟/锗)太阳能电池连接到金属芯印刷电路板(MCPCB),后者放置在用于热能回收的线圈电路上。特别地,主要目的是确定流体出口温度。对应于等于120°C的恒定电池温度(通常代表最高工作温度)和直接受直接法线照射(DNI)立即变化的电池温度值进行评估。因此,采用Gordon-Reddy统计模型可实现准确的DNI分析。使用准确的电模型,可以确定电池温度和效率以及CPV / T模块的电功率和热功率。通常,CPV系统的大小是根据用户的电力负荷需求来实现的,因此,重要的是评估必需的最小浓度比(C min ),CPV系统适用性的限制,以便按顺序进行。确定能源便利状况。然后可以通过FEM分析获得流体出口温度,以验证CPV / T系统是否可以用于太阳能加热和冷却应用中。

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